Solid oxide fuel cell
US-9214693-B2 · Dec 15, 2015 · US
US10084191B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10084191-B2 |
| Application number | US-201314400917-A |
| Country | US |
| Kind code | B2 |
| Filing date | Apr 26, 2013 |
| Priority date | May 15, 2012 |
| Publication date | Sep 25, 2018 |
| Grant date | Sep 25, 2018 |
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An object is to provide a solid electrolyte laminate that allows a large amount of gas to be supplied to a fuel electrode while having improved strength and a method for manufacturing such a solid electrolyte laminate. A solid electrolyte laminate 1 includes a solid electrolyte layer 2 , a first electrode layer 3 disposed on one side of the solid electrolyte layer, and a second electrode layer 4 disposed on another side of the solid electrolyte layer. At least the first electrode layer, which forms a fuel electrode, includes a bonding layer 3 a bonded to the solid electrolyte layer and a porous layer 3 b having continuous pores and integrally formed on the bonding layer.
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The invention claimed is: 1. A solid electrolyte laminate comprising a solid electrolyte layer, a first electrode layer disposed on one side of the solid electrolyte layer, and a second electrode layer disposed on another side of the solid electrolyte layer, wherein at least the first electrode layer, which forms a fuel electrode, includes a bonding layer bonded to the solid electrolyte layer and a porous layer having continuous pores and integrally formed on the bonding layer, wherein the bonding layer has fine pores, wherein the bonding layer has a porosity of 10% to 40%, wherein the bonding layer has a thickness of 100 μm to 1000 μm, wherein the bonding layer comprises a nickel-iron alloy having a nickel content of 30% to 70% by weight; and wherein the porous layer comprises porous nickel or a porous nickel-iron alloy, and has (i) a backbone comprising an outer shell and a hollow space, (ii) a backbone comprising an outer shell and a conductive core, or (iii) a backbone comprising an outer shell, a hollow space, and a conductive core, the backbone forming an integrally continuous three-dimensional network structure. 2. The solid electrolyte laminate according to claim 1 , wherein the solid electrolyte layer comprises a proton-conducting solid electrolyte, and the first electrode layer functions as an anode. 3. The solid electrolyte laminate according to claim 1 , wherein the porous layer has a porosity of 90% or more. 4. A method for manufacturing the solid electrolyte laminate according to claim 1 , the method comprising: a step of manufacturing a laminate including the solid electrolyte layer, the bonding layer disposed on one side of the solid electrolyte layer, and the second electrode layer disposed on another side of the solid electrolyte layer; and a porous-layer forming step of forming the porous layer on the bonding layer. 5. The method for manufacturing the solid electrolyte laminate according to claim 4 , wherein the porous-layer forming step is performed by bonding a porous metal to the bonding layer by reduction bonding. 6. The method for manufacturing the solid electrolyte laminate according to claim 4 , wherein the porous-layer forming step is performed by bonding a porous metal to the bonding layer by diffusion bonding. 7. A fuel cell comprising a plurality of solid electrolyte laminates according to claim 1 stacked on top of each other and an interconnector disposed therebetween. 8. The fuel cell according to claim 7 , wherein the porous layer forms a fuel gas passage. 9. The solid electrolyte laminate according to claim 1 , wherein the bonding layer has a surface asperities on the side bonded to the porous layer.
Manufacturing or production processes characterised by the final manufactured product · CPC title
Fuel cells · CPC title
Organic polymers · CPC title
the electrolyte consisting of oxides · CPC title
Metals or alloys · CPC title
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